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Biometric System using PCG Signal Analysis: A New Method of Person Identification

机译:PCG信号分析的生物识别系统:一种新的身份识别方法

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Biometrics are considered as one of the most authentic methods for human identification. In this paper a novel method is introduced which uses heart sound to identify humans. Traditional biometric modalities are not potent against any falsifiability so Phonocardiogram (PCG) signals are a different and new way of identifying individuals. Dataset was collected from 30 individuals using BSL instruments. First, PCG signals were preprocessed to remove noise and other artifacts using Empirical Mode Decomposition (EMD) then eleven features, which gave the best intra-class difference, were selected through extensive experimentation using Support Vector Machine (SVM). A series of tests were performed on data set of 1508 signals each of 10 seconds and a very encouraging accuracy of 95.4% was achieved using Quadratic kernel for SVM.
机译:生物识别被认为是最真实的人类识别方法之一。本文介绍了一种使用心音识别人的新颖方法。传统的生物特征识别方法无法抵抗任何伪造,因此心电图(PCG)信号是识别个人的另一种新方法。使用BSL仪器从30个人收集数据集。首先,使用经验模式分解(EMD)对PCG信号进行预处理,以去除噪声和其他伪像,然后使用支持向量机(SVM)通过广泛的实验,选择11种功能,从而提供最佳的组内差异。对每10秒1508个信号的数据集进行了一系列测试,使用用于SVM的Quadratic内核实现了非常令人鼓舞的95.4%的准确性。

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